The mechanical properties of amorphous, degradable, and highly porous poly(lactide-co-caprolactone) structures have been improved by using a 3D fiber deposition (3DF) method. Two designs of 3DF scaffolds, with 45 degrees and 90 degrees layer rotation, were printed and compared with scaffolds produced by a salt-leaching method. The scaffolds had a porosity range from 64% to 82% and a high interconnectivity, measured by micro-computer tomography. The 3DF scaffolds had 89 times higher compressive stiffness and 35 times higher tensile stiffness than the salt-leached scaffolds. There was a distinct decrease in the molecular weight during printing as a consequence of the high temperature. The chain microstructure was, however, not affected; the g...
Biodegradable porous scaffolds for heart tissue engineering were prepared from amorphous elastomeric...
We have developed a new fabrication technique to create three-dimensional (3D) porous poly(e-caprola...
Biodegradable porous scaffolds for heart tissue engineering were prepared from amorphous elastomeric...
The mechanical properties of amorphous, degradable, and highly porous poly(lactide-co-caprolactone) ...
A number of different processing techniques have been developed to design and fabricate three-dimens...
Three-dimensional printing (3DP) consists of a group of promising additive manufacturing techniques ...
Some basic requirements of bone tissue engineering include cells derived from bone tissues, three-di...
Among novel scaffold fabrication techniques, 3D fiber deposition (3DF) has recently emerged as a mea...
In recent times, tremendous progress has been evidenced by the advancements in various methods of ge...
Additive manufacturing techniques are promising technologies to produce patient-specific and effecti...
One of the main issues in tissue engineering is the fabrication of scaffolds that closely mimic the ...
The 3D printing process can produce bioengineered scaffolds with a 100% interconnected porous struct...
Fabrication of new biodegradable scaffolds that guide and stimulate tissue regeneration is still a m...
3D Printing and Additive Manufacturing technologies represent powerful tools for the direct fabricat...
Scaffolds composed of biodegradable polymers and biocompatible ceramics are being used as substitute...
Biodegradable porous scaffolds for heart tissue engineering were prepared from amorphous elastomeric...
We have developed a new fabrication technique to create three-dimensional (3D) porous poly(e-caprola...
Biodegradable porous scaffolds for heart tissue engineering were prepared from amorphous elastomeric...
The mechanical properties of amorphous, degradable, and highly porous poly(lactide-co-caprolactone) ...
A number of different processing techniques have been developed to design and fabricate three-dimens...
Three-dimensional printing (3DP) consists of a group of promising additive manufacturing techniques ...
Some basic requirements of bone tissue engineering include cells derived from bone tissues, three-di...
Among novel scaffold fabrication techniques, 3D fiber deposition (3DF) has recently emerged as a mea...
In recent times, tremendous progress has been evidenced by the advancements in various methods of ge...
Additive manufacturing techniques are promising technologies to produce patient-specific and effecti...
One of the main issues in tissue engineering is the fabrication of scaffolds that closely mimic the ...
The 3D printing process can produce bioengineered scaffolds with a 100% interconnected porous struct...
Fabrication of new biodegradable scaffolds that guide and stimulate tissue regeneration is still a m...
3D Printing and Additive Manufacturing technologies represent powerful tools for the direct fabricat...
Scaffolds composed of biodegradable polymers and biocompatible ceramics are being used as substitute...
Biodegradable porous scaffolds for heart tissue engineering were prepared from amorphous elastomeric...
We have developed a new fabrication technique to create three-dimensional (3D) porous poly(e-caprola...
Biodegradable porous scaffolds for heart tissue engineering were prepared from amorphous elastomeric...